LCD driving circuit using operational amplifier and LCD display apparatus using the same
Summary by NHIP
Operational Amplifier Mode Switching
The operational amplifier switches between two modes to route input signals across different nodes for differential amplification. A control unit alternates signal paths so the first input node receives one signal in the first mode and the other in the second mode, while dedicated differential and output drive stages process these routed signals.
Claim Score by NHIP
Abstract
In an operational amplifier includes: a control unit switches an operation mode between first and second operation modes. A first differential stage circuit section differentially-amplifies a first input signal supplied through a first input node in the first operation mode, and a second input signal supplied through the first input node in the second operation mode, similar to a second differential stage circuit section. A first output drive stage circuit section is configured to amplify the first input signal differentially-amplified by the first or second input differential stage circuit section to output as a first drive voltage, similar to a second output drive stage circuit section. First and second power supplies supply voltages in a first voltage range to the first differential stage circuit section and the first output drive stage circuit section in the first operation mode, and to supply voltages in the first voltage range to the second differential stage circuit section and the first output drive stage circuit section in the second operation mode, similar to third and fourth power supplies. The drive voltage on each of the first and second output nodes is fed back.

Term
Projected expiry 8 March 2031.
- Priority
- Filed
- Granted
- Today
- Projected expiry
10 claims: 3 independent, 7 dependent
- 1Broadest claimClaim Score 13, narrow(NHIP)An operational amplifier comprising:a control unit configured to switch an operation mode between first and second operation modes;an input section configured to receive input signals and supply one of the input signals as a first input signal to a first input node in said first operation mode and to a second input node in said second operation mode and the other of the input signals as a second input signal to said first input node in said second operation mode and to said second input node in said first operation mode;a first differential stage circuit section configured to differentially-amplify said first input signal supplied through said first input node in said first operation mode, and said second input signal supplied through said first input node in said second operation mode;a second differential stage circuit section configured to differentially-amplify said second input signal supplied through said second input node in said first operation mode, and said first input signal supplied through said second input node in said second operation mode;a first output drive stage circuit section configured to amplify said first input signal differentially-amplified by said first or second input differential stage circuit section to output as a first drive voltage;a second output drive stage circuit section configured to amplify said second input signal differentially-amplified by said first or second input differential stage circuit section to output as a second drive voltage;an output section configured to output through a first output node, said first drive voltage in said first operation mode and said second drive voltage in said second operation mode, and to output through a second output node, said second drive voltage in said first operation mode and said first drive voltage in said second operation mode;first and second power supplies configured to supply voltages in a first voltage range to said first differential stage circuit section and said first output drive stage circuit section in said first operation mode, and to supply voltages in said first voltage range to said second differential stage circuit section and said first output drive stage circuit section in said second operation mode;and third and fourth power supplies configured to supply voltages in a second voltage range which is different from said first voltage range, to said second differential stage circuit section and said second output drive stage circuit section in said first operation mode, and to supply voltages in said second voltage range in said first differential stage circuit section and said second output drive stage circuit section in said second operation mode, wherein said first or second drive voltage on said first output node is fed back to said first differential stage circuit section from one of said first and second output drive stage circuit sections, and wherein said first or second drive voltage on said second output node is fed back to said second differential stage circuit section from the other of said first and said second output drive stage circuit sections.
- 9A driving circuit for a liquid crystal display apparatus, comprising:a plurality of operational amplifiers, wherein each of said plurality of operational amplifiers comprises: a control unit configured to switch an operation mode between first and second operation modes;an input section configured to receive input signals and supply one of the input signals as a first input signal to a first input node in said first operation mode and to a second input node in said second operation mode and the other of the input signals as a second input signal to said first input node in said second operation mode and to said second input node in said first operation mode;a first differential stage circuit section configured to differentially-amplify said first input signal supplied through said first input node in said first operation mode, and said second input signal supplied through said first input node in said second operation mode;a second differential stage circuit section configured to differentially-amplify said second input signal supplied through said second input node in said first operation mode, and said first input signal supplied through said second input node in said second operation mode;a first output drive stage circuit section configured to amplify said first input signal differentially-amplified by said first or second input differential stage circuit section to output as a first drive voltage;a second output drive stage circuit section configured to amplify said second input signal differentially-amplified by said first or second input differential stage circuit section to output as a second drive voltage;an output section configured to output through a first output node, said first drive voltage in said first operation mode and said second drive voltage in said second operation mode, and to output through a second output node, said second drive voltage in said first operation mode and said first drive voltage in said second operation mode;first and second power supplies configured to supply voltages in a first voltage range to said first differential stage circuit section and said first output drive stage circuit section in said first operation mode, and to supply voltages in said first voltage range to said second differential stage circuit section and said first output drive stage circuit section in said second operation mode;and third and fourth power supplies configured to supply voltages in a second voltage range which is different from said first voltage range, to said second differential stage circuit section and said second output drive stage circuit section in said first operation mode, and to supply voltages in said second voltage range in said first differential stage circuit section and said second output drive stage circuit section in said second operation mode, wherein said first or second drive voltage on said first output node is fed back to said first differential stage circuit section from one of said first and second output drive stage circuit sections, and wherein said first or second drive voltage on said second output node is fed back to said second differential stage circuit section from the other of said first and said second output drive stage circuit sections.
- 10A method of an operational amplification, comprising:(a) switching an operation mode between first and a second operation mode;(b) supplying voltages in a first voltage range by first and second power supplies to a first input differential stage circuit section and a first output drive stage circuit section, and voltage in a second voltage range, which is different from said first voltage range, by third and fourth power supplies to a second input differential stage circuit section and a second output drive stage circuit section, in said first operation mode;(c) supplying voltages in said first voltage range to said second input differential stage circuit section and said first output drive stage circuit section, and voltages in said second voltage range to said first input differential stage circuit section and said second output drive stage circuit section in said second operation mode;(d) inputting first and second input signals;(e) supplying voltages in the first voltage range to said first input differential stage circuit section and said first output drive stage circuit section, and voltages in said second voltage range to said second input differential stage circuit section and said second output drive stage circuit section, in said first operation mode;(f) supplying voltages in the first voltage range to said second input differential stage circuit section and said first output drive stage circuit section, and voltages in the second voltage range to said first input differential stage circuit section and said second output drive stage circuit section, in said second operation mode;(g) differentially-amplifying said first input signal by said first input differential stage circuit section, and said second input signal by said second input differential stage circuit section, in said first operation mode;(h) differentially-amplifying said second input signal by said first input differential stage circuit section and said first input signal by said second input differential stage circuit section, in said second operation mode;(i) amplifying said first input signal differentially-amplified in said (g) or (h), by said first output drive stage circuit section;(j) amplifying said second input signal differentially-amplified in said (g) or (h), by said second output drive stage circuit section;(k) outputting said first and second drive voltages obtained in said (i) or (j) from said first and second output sections in said first operation mode, respectively;(l) outputting said first and second drive voltages obtained in said (i) or (j) from said second and first output sections in said second operation mode, respectively;(m) feeding back one of said first and second drive voltages outputted from said first output section in said (k) or (l) to said first input differential stage circuit section;and (n) feeding back the other of said first and second drive voltages outputted from said second output section in said (k) or (l) to said second input differential stage circuit section.
Independent claims3
159 paragraphs in 7 sections, as filed
INCORPORATION BY REFERENCE
p-0002This patent application claims a priority on convention based on Japanese Patent Application No. 2009-185451 filed on Aug. 10, 2009. The disclosure thereof is incorporated herein by reference.
TECHNICAL FIELD
p-0003The present invention relates to an operational amplifier, a driving circuit using the same, for a liquid crystal display apparatus and a liquid crystal display apparatus.
BACKGROUND ART
p-0004A recent trend of a thin flat panel is toward more and more increasing in size. In particular, in the field of television, there is a situation where even a liquid crystal panel exceeding 100 inches is put into the market, and it is thought that the trend will never change. However, along with the increase in size of a liquid crystal panel, a data line load of a TFT LCD (Thin Film Transistor Liquid Crystal Display) becomes increasingly large, and therefore power consumed in an amplifier of an LCD driver that drives the TFT LCD tends to increase. Further, in order to reduce the number of LCD drivers to be used, the number of outputs of one chip tends to increase more and more. That is, a power consumption amount by one chip increases more and more. As a result, the power consumption amount as a whole of LCD drivers increases, and thereby a chip temperature abnormally rises.
p-0005Among measure for the temperature rising of a chip, one having been recently focused on is a method that reduces power consumed by a chip. In this method, a voltage V<sub>DD</sub>/2 that is a half of a power supply voltage V<sub>DD </sub>is supplied to the chip, and an amplifier operates in the voltage V<sub>DD</sub>/2.
p-0006However, as this method becomes widespread, there arise various circuit-based problems. For example, there is a problem that, in the case of a conventional circuit, if only a differential stage is operated in the range of V<sub>SS </sub>(GND) to V<sub>DD</sub>, and an output stage is operated with the V<sub>DD</sub>/2 power supply, a voltage balance cannot be maintained on the circuit operation, and therefore a desired characteristic cannot be obtained.
p-0007In conjunction with the above, Patent literature 1 (JP 2002-175052A) discloses an operational amplifier. The operational amplifier is intended to reduce a power consumption amount. In the following, referring to <figref idrefs="DRAWINGS">FIGS. 1 to 3</figref>, the conventional operational amplifier in the Patent literature 1 will be described.
p-0008<figref idrefs="DRAWINGS">FIG. 1</figref> is a circuit diagram showing a configuration of the conventional operational amplifier circuit in the Patent literature 1. The conventional operational amplifier circuit is provided with two differential type input stage circuits <b>140</b> and <b>240</b>, two drive stage circuits <b>130</b> and <b>230</b>, four switch circuits <b>30</b>, <b>40</b>, <b>50</b>, and <b>60</b>, two P-channel MOS transistors MP<b>180</b> and MP<b>280</b> and two N-channel MOS transistors MN<b>180</b> and MN<b>280</b>. It should be noted that each of the two differential type input stage circuits <b>140</b> and <b>240</b> and two drive stage circuits <b>130</b> and <b>230</b> is supplied with a power supply voltage (V<sub>DD</sub>) and a power supply voltage (V<sub>SS</sub>).
p-0009The drive stage circuit <b>130</b> is connected to an output terminal <b>110</b> through drains of the P-channel MOS transistor MP<b>180</b> and the N-channel MOS transistor MN<b>180</b>. Similarly, the drive stage circuit <b>230</b> is connected to an output terminal <b>210</b> through drains of the P-channel MOS transistor MP<b>280</b> and the N-channel MOS transistor MN<b>280</b>. A source of the P-channel MOS transistor MP<b>180</b> is supplied with the power supply voltage V<sub>DD</sub>. A source of the N-channel MOS transistor MN<b>180</b> is supplied with a half (V<sub>DD</sub>/2) of the power supply voltage V<sub>DD</sub>. Also, a source of the P-channel MOS transistor MP<b>280</b> is supplied with a half (V<sub>DD</sub>/2) of the power supply voltage V<sub>DD</sub>. A source of the N-channel MOS transistor MN<b>280</b> is supplied with the power supply voltage V<sub>SS</sub>.
p-0010The switch circuit <b>30</b> is provided with switches SW<b>301</b> to SW<b>304</b>, and controls connections between output terminals <b>110</b> and <b>210</b> and odd-numbered and even-numbered terminals <b>310</b> and <b>320</b>. The switch circuit <b>40</b> is provided with switches SW<b>401</b> to SW<b>404</b>, and controls connections between terminals <b>410</b> and <b>420</b> and input terminals <b>120</b> and <b>220</b> of the differential type input stage circuits <b>140</b> and <b>240</b>. It should be noted that the terminal <b>410</b> is supplied with a voltage INP from a positive-side DAC (digital analog converter), and the terminal <b>420</b> is supplied with a voltage INN from a negative-side DAC. The switch circuit <b>50</b> is provided with four switches SW<b>501</b> to SW<b>504</b>, and controls connections between the differential type input stage circuits <b>140</b> and <b>240</b> and the drive stage circuits <b>130</b> and <b>230</b>. The switch circuit <b>60</b> is provided with four switches SW<b>601</b> to SW<b>604</b>, and controls connections between the output terminals <b>110</b> and <b>210</b> and input terminals <b>121</b> and <b>221</b> of the differential type input stage circuits <b>140</b> and <b>240</b>.
p-0011The conventional operational amplifier circuit can use the switch circuits <b>30</b> to <b>60</b> to change a configuration of an amplifier circuit that drives the odd-numbered and even-numbered terminals <b>310</b> and <b>320</b>. Specifically, in a pattern <b>1</b>, the eight switches SW<b>301</b>, SW<b>303</b>, SW<b>401</b>, SW<b>403</b>, SW<b>501</b>, SW<b>503</b>, SW<b>601</b>, and SW<b>603</b> are in an ON state, and the eight switches SW<b>302</b>, SW<b>304</b>, SW<b>402</b>, SW<b>404</b>, SW<b>502</b>, SW<b>504</b>, SW<b>602</b>, and SW<b>604</b> are in an OFF state, and the pattern <b>1</b> and a pattern <b>2</b> opposite to the pattern <b>1</b> are switched to each other.
p-0012In the case of the pattern <b>1</b>, the voltage INP is supplied from the positive-side DAC to an amplifier circuit including the differential type input stage circuit <b>140</b> and the drive stage circuit <b>130</b>. Also, an output is outputted from the output terminal <b>110</b> to the odd-numbered terminal <b>310</b> as an odd-numbered output Vodd. At this time, the voltage INN is supplied from the negative-side DAC to an amplifier circuit including the differential type input stage circuit <b>240</b> and the drive stage circuit <b>230</b>. Also, an output is outputted from the output terminal <b>210</b> to the even-numbered terminal <b>320</b> as an even-numbered output Veven.
p-0013On the other hand, in the case of the pattern <b>2</b>, the voltage INP is supplied from the positive-side DAC to an amplifier circuit including the differential type input stage circuit <b>240</b> and the drive stage circuit <b>130</b>. Also, an output is outputted from the output terminal <b>110</b> to the even-numbered terminal <b>320</b> as the even-numbered output Veven. At this time, the voltage INN is supplied from the negative-side DAC to an amplifier circuit including the differential type input stage circuit <b>140</b> and the drive stage circuit <b>230</b>. Also, an output is outputted from the output terminal <b>210</b> to the odd-numbered terminal <b>310</b> as the odd-numbered output Vodd.
p-0014The conventional operational amplifier circuit operates as follows, to drive capacitive loads connected to the odd-numbered and even-numbered terminals <b>310</b> and <b>320</b>. At this time, the differential type input stage circuits <b>140</b> and <b>240</b> and the drive stage circuits <b>130</b> and <b>230</b> operate in a voltage range of the positive power supply voltage V<sub>DD </sub>to the negative power supply voltage V<sub>SS</sub>. Also, the MOS transistors MP<b>180</b> and MN<b>180</b> and the MOS transistors MP<b>280</b> and MN<b>280</b> are output transistors, and respectively operate in voltage ranges of V<sub>DD </sub>to V<sub>DD</sub>/2 and V<sub>DD</sub>/2 to V<sub>SS</sub>. This results in the power consumption amount consumed in an output stage to be approximately halved.
p-0015<figref idrefs="DRAWINGS">FIG. 2</figref> is a circuit showing a configuration of the differential type input stage circuit <b>140</b> shown in Patent literature 1. The differential type input stage circuit <b>140</b> is provided with six P-channel MOS transistors MP<b>101</b>, MP<b>102</b>, MP<b>103</b>, MP<b>104</b>, MP<b>105</b>, and MP<b>106</b>, and four N-channel MOS transistors MN<b>101</b>, MN<b>102</b>, MN<b>103</b>, and MN<b>104</b>. It should be noted that sources of the four P-channel MOS transistors MP<b>103</b>, MP<b>104</b>, MP<b>105</b>, and MP<b>106</b> are connected with the positive power supply voltage V<sub>DD</sub>. Sources of the two N-channel MOS transistors MN<b>103</b> and MN<b>104</b> are connected with the negative power supply voltage V<sub>SS</sub>. Sources of the two N-channel MOS transistors MN<b>101</b> and MN<b>102</b> are connected to the power supply voltage V<sub>SS </sub>through a constant current source I<b>101</b>. Sources of the two P-channel MOS transistors MP<b>101</b> and MP<b>102</b> are connected to the power supply voltage V<sub>DD </sub>through a constant current source I<b>102</b>.
p-0016The two P-channel MOS transistors MP<b>101</b> and MP<b>102</b> constitutes a differential pair. The two N-channel MOS transistors MN<b>103</b> and MN<b>104</b> constitute an active load for the differential pair.
p-0017Also, the two N-channel MOS transistors MN<b>101</b> and MN<b>102</b> constitutes a differential pair. The two P-channel MOS transistors MP<b>103</b> and MP<b>104</b> and the two P-channel MOS transistors MP<b>105</b> and MP<b>106</b> respectively constitute current mirror circuits. Outputs of the current mirror circuits are connected to drains of the two N-channel MOS transistors MN<b>103</b> and MN<b>104</b>.
p-0018Further, the input terminal <b>120</b> is connected to respective gates of the N-channel MOS transistor MN<b>101</b> and the P-channel MOS transistor MP<b>102</b>. The input terminal <b>121</b> is connected to respective gates of the N-channel MOS transistor MN<b>102</b> and the P-channel MOS transistor MP<b>101</b>.
p-0019Also, respective drains of the N-channel MOS transistor MN<b>104</b> and the P-channel MOS transistor MP<b>106</b> are connected to the two switches SW<b>501</b> and SW<b>502</b> through a terminal <b>123</b>.
p-0020Based on such a configuration, differential input signals supplied to the input terminals <b>120</b> and <b>121</b> are subjected to conversion, and then outputted from the terminal <b>123</b>.
p-0021A configuration and an operation of the differential type input circuit <b>240</b> are the same as those described above. However, it should be noted that the two input terminals <b>120</b> and <b>121</b>, a terminal <b>123</b>, and two switches SW<b>501</b> and SW<b>502</b> should be replaced by the two input terminals <b>220</b> and <b>221</b>, a terminal <b>223</b>, and switches SW<b>503</b> and SW<b>504</b>, respectively.
p-0022<figref idrefs="DRAWINGS">FIG. 3</figref> is a circuit showing a configuration of the conventional drive stage circuit <b>130</b>. The drive stage circuit <b>130</b> is provided with three P-channel MOS transistors MP<b>107</b> to MP<b>109</b>, an N-channel MOS transistor MN<b>105</b>, a P-channel MOS transistor MP<b>110</b>, and two constant current sources <b>103</b> and <b>104</b>. It should be noted that a source of each of the three P-channel MOS transistors MP<b>107</b> to MP<b>109</b> is supplied with the power supply voltage V<sub>DD</sub>. A source of the N-channel MOS transistor MN<b>105</b> is supplied with the power supply voltage V<sub>SS</sub>. Each of the two constant current sources <b>103</b> and <b>104</b> is supplied with the power supply voltage V<sub>SS</sub>.
p-0023A gate of the N-channel MOS transistor MN<b>105</b> is connected to the two switches SW<b>501</b> and SW<b>502</b> through a terminal <b>131</b>. A drain of the N-channel MOS transistor MN<b>105</b> is connected to a drain of the P-channel MOS transistor MP<b>107</b>.
p-0024The P-channel MOS transistor MP<b>107</b> constitutes a current mirror circuit with each of the P-channel MOS transistors MP<b>108</b> and MP<b>109</b>. A drain of the P-channel MOS transistor MP<b>108</b> is connected to the constant current source <b>103</b> through the P-channel MOS transistor MP<b>110</b>. A gate of the P-channel MOS transistor MP<b>110</b> is connected to a gate of the P-channel MOS transistor MP<b>180</b>. A drain of the P-channel MOS transistor MP<b>109</b> is connected to a gate of the N-channel MOS transistor MN<b>180</b> and the constant current source <b>104</b>.
p-0025According to such a configuration, in the drive stage circuit <b>130</b>, an input voltage supplied from the terminal <b>131</b> is received by the N-channel MOS transistor MN<b>105</b>, of which output drives the P-channel MOS transistor MP<b>180</b> and the N-channel MOS transistor MN<b>180</b>. That is, a composite output signal according to an input signal from the terminal <b>131</b> is outputted from the terminal <b>110</b>.
p-0026The drive stage circuit <b>230</b> also has the same configuration and operation. However, it should be noted that the P-channel MOS transistor MP<b>280</b>, the N-channel MOS transistor MN<b>280</b>, the terminal <b>132</b>, and two switches SW<b>501</b> and SW<b>503</b> should be replaced by the P-channel MOS transistor MP<b>280</b>, the N-channel MOS transistor MN<b>280</b>, the terminal <b>231</b>, and two switches SW<b>502</b> and SW<b>504</b>, respectively.
CITATION LIST
p-0027<ul><li id="ul0001-0001" num="0026">[Patent literature 1]: JP 2002-175052A</li></ul>
SUMMARY OF THE INVENTION
p-0028In the above-described conventional example, it is very difficult to configure an interface with a circuit having a so-called combined differential stage including typical P-channel and N-channel differential stages. This problem occurs because an interface between the differential stage and the output stage is configured only on the basis of one system.
p-0029Referring to <figref idrefs="DRAWINGS">FIGS. 1 and 3</figref>, attention is focused on the two differential type input stage circuits <b>140</b> and <b>240</b>. Between the case where a differential pair including the two NMOS transistors MN<b>101</b> and MN<b>102</b> operates and the case where a differential pair including the two PMOS transistors MP<b>101</b> and MP<b>102</b> operates, the number of transistors in a current path is different. For this reason, symmetry of output characteristics between the two drive stage circuits <b>130</b> and <b>230</b> is lost.
p-0030It should be noted that the symmetry of output characteristics is defined as follows. That is, if a difference between a rising time and a falling time of an output pulse is small, it is defined that the symmetry is good. On the other hand, if the difference between the rising time and the falling time is large, it is defined that the symmetry is poor.
p-0031For example, in <figref idrefs="DRAWINGS">FIG. 1</figref>, a rising time Tr<b>1</b> and a falling time Tf<b>1</b> of a pulse in an output signal OUTP outputted from the odd-numbered terminal <b>310</b> (or even-numbered terminal <b>320</b>) exhibit different values. If an output signal having such an asymmetric pulse shape drives a capacitive load such as a liquid crystal display apparatus, charging/discharging characteristics to/from the capacitive load are degraded. This sort of operational amplifier circuit may not meet specifications of an LCD driver.
p-0032In an aspect of the present invention, an operational amplifier includes: a control unit configured to switch an operation mode between first and second operation modes; an input section configured to receive input signals and supply one of the input signals as a first input signal to a first input node in the first operation mode and to a second input node in the second operation mode and the other of the input signals as a second input signal to the first input node in the second operation mode and to the second input node in the first operation mode; a first differential stage circuit section configured to differentially-amplify the first input signal supplied through the first input node in the first operation mode, and the second input signal supplied through the first input node in the second operation mode; a second differential stage circuit section configured to differentially-amplify the second input signal supplied through the second input node in the first operation mode, and the first input signal supplied through the second input node in the second operation mode; a first output drive stage circuit section configured to amplify the first input signal differentially-amplified by the first or second input differential stage circuit section to output as a first drive voltage; a second output drive stage circuit section configured to amplify the second input signal differentially-amplified by the first or second input differential stage circuit sections to output as a second drive voltage; an output section configured to output through a first output node, the first drive voltage in the first operation mode and the second drive voltage in the second operation mode, and to output through a second output node, the second drive voltage in the first operation mode and the first drive voltage in the second operation mode; first and second power supplies configured to supply voltages in a first voltage range to the first differential stage circuit section and the first output drive stage circuit section in the first operation mode, and to supply voltages in the first voltage range to the second differential stage circuit section and the first output drive stage circuit section in the second operation mode; and third and fourth power supplies configured to supply voltages in a second voltage range which is different from the first voltage range, to the second differential stage circuit section and the second output drive stage circuit section in the first operation mode, and to supply voltages in the second voltage range in the first differential stage circuit section and the second output drive stage circuit section in the second operation mode. The first or second drive voltage on the first output node is fed back to the first differential stage circuit section from one of the first and second output drive stage circuit sections, and the first or second drive voltage on the second output node is fed back to the second differential stage circuit section from the other of the first and the second output drive stage circuit section.
p-0033In another aspect of the present invention, a driving circuit for a liquid crystal display apparatus, includes: a plurality of operational amplifiers.
p-0034In still another aspect of the present invention, a method of an operational amplification, is achieved by (a) switching an operation mode between first and a second operation mode; by (b) supplying voltages in a first voltage range by first and second power supplies to a first input differential stage circuit section and a first output drive stage circuit section, and voltage in a second voltage range, which is different from the first voltage range, by third and fourth power supplies to a second input differential stage circuit section and a second output drive stage circuit section, in the first operation mode; by (c) supplying voltages in the first voltage range to the second input differential stage circuit section and the first output drive stage circuit section, and voltages in the second voltage range to the first input differential stage circuit section and the second output drive stage circuit section in the second operation mode; by (d) inputting first and second input signals; by (e) supplying voltages in the first voltage range to the first input differential stage circuit section and the first output drive stage circuit section, and voltages in the second voltage range to the second input differential stage circuit section and the second output drive stage circuit section, in the first operation mode; by (f) supplying voltages in the first voltage range to the second input differential stage circuit section and the first output drive stage circuit section, and voltages in the second voltage range to the first input differential stage circuit section and the second output drive stage circuit section, in the second operation mode; by (g) differentially-amplifying the first input signal by the first input differential stage circuit section, and the second input signal by the second input differential stage circuit section, in the first operation mode; by (h) differentially-amplifying the second input signal by the first input differential stage circuit section and the first input signal by the second input differential stage circuit section, in the second operation mode; by (i) amplifying the first input signal differentially-amplified in the (g) or (h), by the first output drive stage circuit section; by (j) amplifying the second input signal differentially-amplified in the (g) or (h), by the second output drive stage circuit section; by (k) outputting the first and second drive voltages obtained in the (i) or (j) from the first and second output sections in the first operation mode, respectively; by (l) outputting the first and second drive voltages obtained in the (i) or (j) from the second and first output sections in the second operation mode, respectively; by (m) feeding back one of the first and second drive voltages outputted from the first output section in the (k) or (l) to the first input differential stage circuit section; and by (n) feeding back the other of the first and second drive voltages outputted from the second output section in the (k) or (l) to the second input differential stage circuit section.
p-0035According to the present invention, two input differential stage circuits and the two output drive stage circuits are respectively supplied with voltages from the two power supply voltages having a different voltage range. The voltage ranges of the two power supply voltages are configured such that a summation of the voltage range can meet a voltage range necessary for an output operation of a subsequent stage circuit. As a result, a supply voltage can be reduced, and a full output operation of the subsequent stage circuit can be performed.
BRIEF DESCRIPTION OF THE DRAWINGS
p-0036The above and other objects, advantages and features of the present invention will be more apparent from the following description of certain embodiments taken in conjunction with the accompanying drawings, in which:
p-0037<figref idrefs="DRAWINGS">FIG. 1</figref> is a circuit showing a configuration of an operational amplifier circuit shown in Patent literature 1;
p-0038<figref idrefs="DRAWINGS">FIG. 2</figref> is a circuit showing a configuration of a differential type input stage circuit of the operational amplifier shown in <figref idrefs="DRAWINGS">FIG. 1</figref>;
p-0039<figref idrefs="DRAWINGS">FIG. 3</figref> is a circuit showing a configuration of a drive stage circuit described of the operational amplifier shown in <figref idrefs="DRAWINGS">FIG. 1</figref>;
p-0040<figref idrefs="DRAWINGS">FIG. 4</figref> is a circuit showing a configuration of an operational amplifier according to a first embodiment of the present invention;
p-0041<figref idrefs="DRAWINGS">FIGS. 5A and 5B</figref> are a circuit diagram showing a configuration of an operational amplifier circuit section in the operational amplifier according to the first embodiment of the present invention;
p-0042<figref idrefs="DRAWINGS">FIGS. 6A and 6B</figref> are a circuit diagram showing a configuration of an operational amplifier circuit section in the operational amplifier according to a second embodiment of the present invention;
p-0043<figref idrefs="DRAWINGS">FIG. 7A-1</figref> is a circuit diagram schematically illustrating a make type switch circuit section;
p-0044<figref idrefs="DRAWINGS">FIG. 7A-2</figref> is a circuit diagram showing the make type switch circuit section of an N-channel MOS transistor;
p-0045<figref idrefs="DRAWINGS">FIG. 7A-3</figref> is a circuit diagram showing the make type switch circuit section of a P-channel MOS transistor;
p-0046<figref idrefs="DRAWINGS">FIG. 7A-4</figref> is a circuit diagram for realizing the make type switch circuit section of two types of MOS transistors;
p-0047<figref idrefs="DRAWINGS">FIG. 7B-1</figref> is a circuit diagram schematically illustrating a transfer switch circuit section;
p-0048<figref idrefs="DRAWINGS">FIG. 7B-2</figref> is a circuit diagram showing the transfer switch circuit section of N-channel MOS transistors;
p-0049<figref idrefs="DRAWINGS">FIG. 7B-3</figref> is a circuit diagram showing the transfer switch circuit section of P-channel MOS transistors; and
p-0050<figref idrefs="DRAWINGS">FIG. 7B-4</figref> is a circuit diagram showing the transfer switch circuit section with two types of MOS transistors.
DESCRIPTION OF THE EMBODIMENTS
p-0051Hereinafter, a liquid crystal display (LCD) driving circuit including an operational amplifier according to the present invention, and a liquid crystal display apparatus driven by the LCD driving circuit will be described with reference to the attached drawings.
First Embodiment
p-0052<figref idrefs="DRAWINGS">FIG. 4</figref> is a circuit showing a configuration of the operational amplifier according to a first embodiment of the present invention. Referring to <figref idrefs="DRAWINGS">FIG. 4</figref>, the operational amplifier according to the present embodiment will be described. The operational amplifier according to the present embodiment is provided with an input switching circuit section <b>70</b>, an operational amplifier circuit section <b>80</b>, and an output switching circuit section <b>90</b>.
p-0053The input switching circuit section <b>70</b> is provided with first and second input nodes <b>71</b> and <b>72</b>, first and second input transfer switch circuit sections SW<b>11</b> and SW<b>12</b>, and first and second output nodes <b>73</b> and <b>74</b>.
p-0054The operational amplifier circuit section <b>80</b> is provided with first and second input nodes <b>801</b> and <b>802</b>, first and second input differential stage circuit sections <b>810</b> and <b>820</b>, first and second output drive stage circuit sections <b>830</b> and <b>840</b>, first to fourth power supply voltages V<sub>DD</sub>, V<sub>ML</sub>, V<sub>MH</sub>, and V<sub>SS</sub>, first and second output nodes <b>803</b> and <b>804</b>, and first to tenth transfer switch circuit sections SW<b>1</b> to SW<b>10</b>. It should be noted that voltages supplied from the power supply voltages V<sub>ML </sub>and V<sub>MH </sub>are both around a half of the voltage supplied from the power supply voltage V<sub>DD</sub>. The first output drive stage circuit section <b>830</b> is a positive only output stage which outputs a voltage of in a voltage range of V<sub>DD </sub>to V<sub>ML</sub>, whereas the second output drive stage circuit section <b>840</b> is a negative only output stage which outputs a voltage of V<sub>MH </sub>to V<sub>SS</sub>.
p-0055The first input differential stage circuit section <b>810</b> is provided with first and second input nodes <b>811</b> and <b>812</b>, first and second output nodes <b>813</b> and <b>814</b>, a positive voltage input node <b>815</b>, and a negative voltage input node <b>816</b>. It should be noted that the first input node <b>811</b> is a non-inversion input node, and the second input node <b>812</b> is an inversion input node. The second input differential stage circuit section <b>820</b> is provided with first and second input nodes <b>821</b> and <b>822</b>, first and second output nodes <b>823</b> and <b>824</b>, a positive voltage input node <b>825</b>, and a negative voltage input node <b>826</b>. It should be noted that the first input node <b>821</b> is a non-inversion input node, and the second input node <b>822</b> is an inversion input section.
p-0056The first output drive stage circuit section <b>830</b> is provided with first and second input nodes <b>831</b> and <b>832</b>, an output node <b>833</b>, a positive voltage input node <b>834</b>, and a negative voltage input node <b>835</b>. The second output drive stage circuit section <b>840</b> is provided with first and second input nodes <b>841</b> and <b>842</b>, an output node <b>843</b>, a positive voltage input node <b>844</b>, and a negative voltage input node <b>845</b>.
p-0057The output switching circuit section <b>90</b> is provided with first and second input nodes <b>901</b> and <b>902</b>, thirteenth and fourteenth transfer switch circuit sections SW<b>13</b> and SW<b>14</b>, and first and second output nodes <b>903</b> and <b>904</b>. The first and second output nodes <b>903</b> and <b>904</b> are respectively in charge of odd-numbered output and even-numbered output, which are to be described later. It should be noted that the combination of the outputs may be switched.
p-0058Each of the first to fourteenth transfer switch circuit sections SW<b>1</b> to SW<b>14</b> is provided with a common terminal, a first terminal, and a second terminal. Also, each of the first to fourteenth transfer switch circuit sections SW<b>1</b> to SW<b>14</b> has a first state and a second state. In each of the first to fourteenth transfer switch circuit sections SW<b>1</b> to SW<b>14</b> in the first state, the common terminal and the first terminal are made conductive to each other, whereas the common terminal and the second terminal are insulated from each other. On the other hand, in each of the first to fourteenth transfer switch circuit sections SW<b>1</b> to SW<b>14</b> in the second state, the common terminal and the first terminal are insulated from each other, whereas the common terminal and the second terminal are made conductive to each other. It should be noted that, in <figref idrefs="DRAWINGS">FIG. 4</figref>, the first to fourteenth transfer switch circuit sections SW<b>1</b> to SW<b>14</b> are represented as being in the first state. In the following, the first terminal and the second terminal of each of the first to fourteenth transfer switch circuit sections SW<b>1</b> to SW<b>14</b> are respectively described as a break terminal and a make terminal.
p-0059Here, connection relation between the components of the operational amplifier according to the present embodiment will be described.
p-0060The first input node <b>71</b> of the input switching circuit section <b>70</b> is connected to a positive DAC (Digital to Analog Converter) (not shown). The first input node <b>71</b> of the input switching circuit section <b>70</b> is further connected to the common terminal of the eleventh transfer switch SW<b>11</b>. The break terminal of the eleventh transfer switch SW<b>11</b> is connected to the first output node <b>73</b> of the input switching circuit section <b>70</b>. The make terminal of the eleventh transfer switch SW <b>11</b> is connected to the second output node <b>74</b> of the input switching circuit section <b>70</b>.
p-0061The second input node <b>72</b> of the input switching circuit section <b>70</b> is connected to a negative DAC (not shown). The second input node <b>72</b> of the input switching circuit section <b>70</b> is further connected to the common terminal of the twelfth transfer switch SW<b>12</b>. The make terminal of the twelfth transfer switch SW<b>12</b> is connected to the first output node <b>73</b> of the input switching circuit section <b>70</b>. The break terminal of the eleventh transfer switch SW <b>11</b> is connected to the second output node <b>74</b> of the input switching circuit section <b>70</b>.
p-0062The first and second output nodes <b>71</b> and <b>72</b> in the input switching circuit section <b>70</b> are respectively connected to the first and second input nodes <b>801</b> and <b>802</b> in the operational amplifier circuit section <b>80</b>.
p-0063The first input nodes <b>801</b> and <b>802</b> in the operational amplifier circuit section <b>80</b> are connected to the first input node <b>811</b> of the first input differential stage circuit section <b>810</b> and the first input node <b>821</b> of the second input differential stage circuit section <b>820</b>.
p-0064The first output node <b>813</b> of the first input differential stage circuit section <b>810</b> is connected to the common terminal of the second transfer switch circuit section SW<b>2</b>. The second output node <b>814</b> of the first input differential stage circuit section <b>810</b> is connected to the common terminal of the third transfer switch circuit section SW<b>3</b>. The first output node <b>823</b> of the second input differential stage circuit section <b>820</b> is connected to the common terminal of the sixth transfer switch circuit section SW<b>6</b>. The second output node <b>824</b> of the second input differential stage circuit section <b>820</b> is connected to the common terminal of the seventh transfer switch circuit section SW<b>7</b>.
p-0065The voltage input node <b>815</b> of the first input differential stage circuit section <b>810</b> is connected to the common terminal of the first transfer switch circuit section SW<b>1</b>. The voltage input node <b>816</b> of the first input differential stage circuit section <b>810</b> is connected to the common terminal of the fourth transfer switch circuit section SW<b>4</b>. The voltage input node <b>825</b> of the second input differential stage circuit section <b>820</b> is connected to the common terminal of the fifth transfer switch circuit section SW<b>5</b>. The voltage input node <b>826</b> of the second input differential stage circuit section <b>820</b> is connected to the common terminal of the eighth transfer switch circuit section SW<b>8</b>.
p-0066The second input section of the first input differential stage circuit section <b>810</b> is connected with the common terminal of the ninth transfer switch circuit section SW<b>9</b>. The second input section of the second input differential stage circuit section <b>820</b> is connected with the common terminal of the tenth transfer switch circuit section SW<b>10</b>.
p-0067A first input node <b>831</b> of the first output drive stage circuit section <b>830</b> is connected to the break terminal of the second transfer switch circuit section SW<b>2</b> and the make terminal of the sixth transfer switch circuit section SW<b>6</b>. A second input node <b>832</b> of the first output drive stage circuit section <b>830</b> is connected to the break terminal of the third transfer switch circuit section SW<b>3</b> and the make terminal of the seventh transfer switch circuit section SW<b>7</b>. A first input node <b>841</b> of the second output drive stage circuit section <b>840</b> is connected to the break terminal of the sixth transfer switch circuit section SW<b>6</b> and the make terminal of the second transfer switch circuit section SW<b>2</b>. A second input node <b>842</b> of the second output drive stage circuit section <b>840</b> is connected to the break terminal of the seventh transfer switch circuit section SW<b>7</b> and the make terminal of the third transfer switch circuit section SW<b>3</b>.
p-0068An output node <b>833</b> of the first output drive stage circuit section <b>830</b> is connected to the first output node <b>803</b> of the operational amplifier circuit section <b>80</b>, the break terminal of the ninth transfer switch circuit section SW<b>9</b>, and the make terminal of the tenth transfer switch circuit section SW<b>10</b>. An output node <b>843</b> of the second output drive stage circuit section <b>840</b> is connected to the second output node <b>804</b> of the operational amplifier circuit section <b>80</b>, the break terminal of the tenth transfer switch circuit section SW<b>10</b>, and the make terminal of the ninth transfer switch circuit section SW<b>9</b>.
p-0069The voltage input node <b>834</b> of the first output drive stage circuit section <b>830</b> is connected to the first power supply voltage V<sub>DD</sub>, the break terminal of the first transfer switch circuit section SW<b>1</b>, and the make terminal of the fifth transfer switch circuit section SW<b>5</b>. The voltage input node <b>835</b> of the first output drive stage circuit section <b>830</b> is connected to the second power supply V<sub>ML</sub>, the break terminal of the fourth transfer switch circuit section SW<b>4</b>, and the make terminal of the eighth transfer switch circuit section SW<b>8</b>. The voltage input node <b>844</b> of the second output drive stage circuit section <b>840</b> is connected to the third power supply V<sub>MH</sub>, the break terminal of the fifth transfer switch circuit section SW<b>5</b>, and the make terminal of the first transfer switch circuit section SW<b>1</b>. The voltage input node <b>845</b> of the second output drive stage circuit section <b>840</b> is connected to the fourth power supply V<sub>SS</sub>, the break terminal of the eighth transfer switch circuit section SW<b>8</b>, and the make terminal of the fourth transfer switch circuit section SW<b>4</b>.
p-0070The first output node <b>803</b> of the operational amplifier circuit section <b>80</b> is connected to the first input node <b>901</b> of the output switching circuit section <b>90</b>. The second output node <b>804</b> of the operational amplifier circuit section <b>80</b> is connected to the second input node <b>902</b> of the output switching circuit section <b>90</b>.
p-0071The first input node <b>901</b> of the output switching circuit section <b>90</b> is connected to the common terminal of the thirteenth transfer switch circuit section SW<b>13</b>. The second input node <b>902</b> of the output switching circuit section <b>90</b> is connected to the common terminal of the fourteenth transfer switch circuit section SW<b>14</b>. The break terminal of the thirteenth transfer switch circuit section SW<b>13</b> and the make terminal of the fourteenth transfer switch circuit section SW<b>14</b> are connected to the first output node <b>903</b> of the output switching circuit section <b>90</b>. The make terminal of the thirteenth transfer switch circuit section SW<b>13</b> and the break terminal of the fourteenth transfer switch circuit section SW<b>14</b> are connected to the second output node <b>904</b> of the output switching circuit section <b>90</b>.
p-0072Here, the LCD driving circuit according to the present invention will be described. The LCD driving circuit according to the present invention is provided with a plurality of the operational amplifiers according to the present embodiment.
p-0073In general, in a liquid crystal display apparatus, a plurality of liquid crystal cells are arranged in a matrix. Also, in general, the LCD driving circuit controls the plurality of liquid crystal cells in units of rows or columns. Accordingly, the plurality of operational amplifiers in the LCD driving circuit according to the present invention are connected in parallel.
p-0074Further, the LCD driving circuit according to the present invention controls the plurality of liquid crystal cells in units of two rows or two columns. It is preferable for the control to alternatively apply positive and negative voltages to liquid crystal cells in two rows or columns.
p-0075Next, an operation of the operational amplifier according to the present embodiment will be described.
p-0076First, an operation common to the first to fourteenth transfer switch circuit sections SW<b>1</b> to SW<b>14</b> will be described. Each of the transfer switch circuit sections has the two states. That is, each of the transfer switch circuit sections transits between the first state that the common terminal is made conductive to the first terminal and insulated from the second terminal and the second state that the common terminal is made conductive to the second terminal and insulated from the first terminal. It should be noted that, preferably, the operational amplifier according to the present embodiment is further provided with a control circuit section (not shown), and the control circuit section controls states of the first to fourteenth transfer switch circuit sections SW<b>1</b> to SW<b>14</b>.
p-0077Next, in the entire operational amplifier, all the first to fourteenth transfer switch circuit sections SW<b>1</b> to SW<b>14</b> are in either the first state or the second state. That is, even as the operational amplifier, the transition between the two states is made. It should be noted that <figref idrefs="DRAWINGS">FIG. 4</figref> illustrates the operational amplifier in the first state.
p-0078In the operational amplifier in the first state, the first input differential stage circuit section <b>810</b> and the first output drive stage circuit section <b>830</b> operate as an operational amplifier. In this case, a signal from the positive DAC (not shown) is outputted to an odd-numbered output node.
p-0079First, the signal supplied from the positive DAC (not shown) to the first input node <b>71</b> in the input switching circuit section <b>70</b> is transferred to the first input node <b>811</b> of the first input differential stage circuit section <b>810</b> through the eleventh transfer switch circuit section SW<b>11</b>. At this time, the first and second output nodes <b>813</b> and <b>814</b> of the first input differential stage circuit section <b>810</b> are connected to the first and second input nodes <b>831</b> and <b>832</b> in the first output drive stage circuit section <b>830</b> through the second and third transfer switch circuit sections SW<b>2</b> and SW<b>3</b>, respectively. Also, at this time, the output node <b>833</b> of the first output drive stage circuit section <b>830</b> is connected to the first output node <b>903</b> of the output switching circuit section <b>90</b> through the thirteenth transfer switch circuit section SW<b>13</b>.
p-0080Also, the output node <b>833</b> of the first output drive stage circuit section <b>830</b> is connected to the second input node <b>812</b> of the first input differential stage circuit section <b>810</b> through the ninth transfer switch circuit section SW<b>9</b>. Accordingly, the first input differential stage circuit section <b>810</b> and the first output drive stage circuit section <b>830</b> operate as a voltage follower circuit. Here, supposing that an input voltage of the first input section of the first input differential stage circuit section <b>810</b> is denoted by Vin, and an output voltage of the output section of the first output drive stage circuit section <b>830</b> is denoted by Vout, <br />Vin=Vout.
p-0081Further, the voltage input nodes <b>815</b> and <b>816</b> of the first input differential stage circuit section <b>810</b> are connected with first and second power supply voltages V<sub>DD </sub>and V<sub>ML </sub>through the first and fourth transfer switch circuit sections SW<b>1</b> and SW<b>4</b>, respectively.
p-0082In the operational amplifier in the first state, simultaneously with the above, the second input differential stage circuit section <b>820</b> and the second output drive stage circuit section <b>840</b> operate as an operational amplifier. In this case, a signal from the negative DAC (not shown) is outputted to an even-numbered output node.
p-0083First, the signal supplied from the negative DAC (not shown) to the second input node <b>72</b> of the input switching circuit section <b>70</b> is transferred to the first input node <b>821</b> of the second input differential stage circuit section <b>820</b> through the twelfth transfer switch circuit section SW<b>12</b>. At this time, the first and second output nodes <b>823</b> and <b>824</b> of the second input differential stage circuit section <b>820</b> are connected to the first and second input nodes <b>841</b> and <b>842</b> in the second output drive stage circuit section <b>840</b> through the sixth and seventh transfer switch circuit sections SW<b>6</b> and SW<b>7</b>, respectively. Also, at this time, the output node <b>843</b> of the second output drive stage circuit section <b>840</b> is connected to the second output node <b>904</b> of the output switching circuit section <b>90</b> through the fourteenth transfer switch circuit section SW<b>14</b>.
p-0084Also, the output node <b>843</b> of the second output drive stage circuit section <b>840</b> is further connected to the second input node <b>822</b> of the second input differential stage circuit section <b>820</b> through the tenth transfer switch circuit section SW<b>10</b>. Accordingly, the second input differential stage circuit section <b>820</b> and the second output drive stage circuit section <b>840</b> operate as a voltage follower circuit. Here, supposing that an input voltage of the first input section of the second input differential stage circuit section <b>820</b> is denoted by Vin, and an output voltage of the output section of the second output drive stage circuit section <b>840</b> is denoted by Vout, <br />Vin=Vout.
p-0085Further, the voltage input nodes <b>825</b> and <b>826</b> in the second input differential stage circuit section <b>820</b> are connected with third and fourth power supply voltages V<sub>MH </sub>and V<sub>SS </sub>through the fifth and eighth transfer switch circuit sections SW<b>5</b> and SW<b>8</b>, respectively.
p-0086In the operational amplifier in the second state, the second input differential stage circuit section <b>820</b> and the first output drive stage circuit section <b>830</b> operate as an operational amplifier. In this case, the signal from the positive DAC (not shown) is outputted to the even-numbered output terminal.
p-0087First, the signal supplied from the positive DAC (not shown) to the first input node <b>71</b> of the input switching circuit section <b>70</b> is supplied to the first input node <b>821</b> of the second input differential stage circuit section <b>820</b> through the eleventh transfer switch circuit section SW<b>11</b>. At this time, the first and second output nodes <b>823</b> and <b>824</b> of the second input differential stage circuit section <b>820</b> are connected to the first and second input nodes <b>831</b> and <b>832</b> in the first output drive stage circuit section <b>830</b> through the sixth and seventh transfer switch circuit sections SW<b>6</b> and SW<b>7</b>, respectively. Also, at this time, the output node <b>833</b> of the first output drive stage circuit section <b>830</b> is connected to the second output node <b>904</b> of the output switching circuit section <b>90</b> through the thirteenth transfer switch circuit section SW<b>13</b>.
p-0088Also, the output node <b>833</b> of the first output drive stage circuit section <b>830</b> is connected to the second input node <b>822</b> of the second input differential stage circuit section <b>820</b> through the tenth transfer switch circuit section SW<b>10</b>. Accordingly, the second input differential stage circuit section <b>820</b> and the first output drive stage circuit section <b>830</b> operate as a voltage follower connected operational amplifier. Here, given that an input voltage at the first input section of the second input differential stage circuit section <b>820</b> is denoted by Vin, and an output voltage at the output section of the first output drive stage circuit section <b>830</b> is denoted by Vout, <br />Vin=Vout.
p-0089Further, the voltage input nodes <b>825</b> and <b>826</b> in the second input differential stage circuit section <b>820</b> are connected with the first and second power supply voltages V<sub>DD </sub>and V<sub>ML </sub>through the fifth and eighth transfer switch circuit sections SW<b>5</b> and SW<b>8</b>, respectively.
p-0090In the operational amplifier in the second state, simultaneously with the above, the first input differential stage circuit section <b>810</b> and the second output drive stage circuit section <b>840</b> operate as an operational amplifier. In this case, the signal from the negative DAC is transferred to the odd-numbered output terminal.
p-0091First, the signal supplied from the negative DAC (not shown) to the second input node <b>72</b> of the input switching circuit section <b>70</b> is transferred to the first input node <b>811</b> of the first input differential stage circuit section <b>810</b> through the twelfth transfer switch circuit section SW<b>12</b>. At this time, the first and second output nodes <b>813</b> and <b>814</b> of the first input differential stage circuit section <b>810</b> are connected to the first and second input nodes <b>841</b> and <b>842</b> in the second output drive stage circuit section <b>840</b> through the second and third transfer switch circuit sections SW<b>2</b> and SW<b>3</b>, respectively. Also, at this time, the output node <b>843</b> of the second output drive stage circuit section <b>840</b> is connected to the first output node <b>903</b> of the output switching circuit section <b>90</b> through the fourteenth transfer switch circuit section SW<b>14</b>.
p-0092Also, the output node <b>843</b> of the second output drive stage circuit section <b>840</b> is further connected to the second input node <b>812</b> of the first input differential stage circuit section <b>810</b> through the ninth transfer switch circuit section SW<b>9</b>. Accordingly, the first input differential stage circuit section <b>810</b> and the second output drive stage circuit section <b>840</b> operate as a voltage follower connected operational amplifier. Here, supposing that an input voltage at the first input section of the first input differential stage circuit section <b>810</b> is denoted by Vin, and an output voltage at the output section of the second output drive stage circuit section <b>840</b> is denoted by Vout, <br />Vin=Vout.
p-0093Further, the voltage input nodes <b>815</b> and <b>816</b> in the first input differential stage circuit section <b>810</b> are connected with the third and fourth power supply voltages V<sub>MH </sub>and V<sub>SS </sub>through the first and fourth transfer switch circuit sections SW<b>1</b> and SW<b>4</b>, respectively.
p-0094In general, in the LCD driving circuit, it is necessary to alternately apply positive and negative outputs to the liquid crystal cell to prevent an LCD from being burned. For this purpose, in the case of such a positive/negative only amplifier configuration, the polarity switches are required between the output terminal and a drain line of the LCD. For this reason, the cross switch <b>90</b> (of the thirteenth and fourteenth switches SW<b>13</b> and SW<b>14</b> in <figref idrefs="DRAWINGS">FIG. 4</figref>) is inserted between positive and negative only output stages and the LCD drain line. Further, the input switching circuit section <b>70</b> is inserted between positive and negative DAC outputs of a previous stage connected to the operational amplifier and differential stages A <b>810</b> and B <b>820</b>.
p-0095As described, when the positive DAC output is supplied to the differential stage A/B <b>810</b>, <b>820</b>, positive and negative side power supply voltages of the differential stage A/B <b>810</b>, <b>820</b> are V<sub>DD </sub>and V<sub>ML</sub>, respectively. On the other hand, when the negative DAC output is supplied, the positive and negative side power supply voltages of the differential stage A/B are V<sub>MH </sub>and V<sub>SS </sub>(GND), respectively.
p-0096Here, the above-described voltages V<sub>ML </sub>and V<sub>MH </sub>are connected in common, and made equal to the voltage of approximately V<sub>DD</sub>/2. That is, there is an application in which the operation is performed with one power supply voltage.
p-0097The power supply voltage of the two differential stages <b>810</b> and <b>820</b> are limited, and therefore input voltage ranges of them are obviously limited. By switching the power supply voltages of the differential stages <b>810</b> and <b>820</b> based on an input voltage range, a normal operation is consequently performed in the entire input voltage range (V<sub>SS </sub>(GND) to V<sub>DD</sub>).
p-0098Similarly, the power supply voltages of the two output stages <b>830</b> and <b>840</b> are limited, and therefore output voltage ranges of them are obviously limited. By switching the positive and negative only output stages based on an output voltage range, an entire output voltage range (V<sub>SS </sub>(GND) to V<sub>DD</sub>) can be consequently outputted to an odd-numbered output terminal/even-numbered output terminal.
p-0099Here, it should be noted that the voltage of V<sub>DD</sub>/2 is not necessarily a half of the power supply voltage, but V<sub>DD</sub>/2±ΔV is also acceptable in terms of an operable range. In addition, typically, ΔV may be around a few volts.
p-0100Next, the operation of the LCD driving circuit according to the present invention will be described.
p-0101Preferably, the plurality of operational amplifiers that are arranged in parallel in the LCD driving circuit according to the present invention all operate synchronously. That is, in all of the operational amplifiers, switching between the first and second operation modes is preferably made synchronously. For this purpose, preferably, a control unit (not shown) controls all of the operational amplifiers.
p-0102<figref idrefs="DRAWINGS">FIGS. 5A and 5B</figref> are circuit diagrams showing a configuration of the operational amplifier circuit section <b>80</b> according to the first embodiment of the present invention. It should be noted that <figref idrefs="DRAWINGS">FIGS. 5A and 5B</figref> illustrate one circuit diagram separated into two diagrams. Reference numerals <b>5</b><i>a </i>to <b>5</b><i>j </i>are notations for specifying ten lines divided between the both diagrams.
p-0103The first input differential stage circuit section <b>810</b> is provided with first and second constant current sources I<b>1</b> and I<b>2</b>, first to fourth P-channel MOS transistors MP<b>1</b> to MP<b>4</b>, and first to fourth N-channel MOS transistors MN<b>1</b> to MN<b>4</b>. The first output drive stage circuit section <b>830</b> is provided with third and fourth constant current sources I<b>3</b> and I<b>4</b>, first and second bias voltage sources V<sub>BP1 </sub>and V<sub>BN1</sub>, fifth and sixth P-channel MOS transistors MP<b>5</b> and MP<b>6</b>, fifth and sixth N-channel MOS transistors MN<b>5</b> and MN<b>6</b>, first and second resistances R<b>1</b> and R<b>2</b>, and first and second capacitances C<b>1</b> and C<b>2</b>. The second input differential stage circuit section <b>820</b> is provided with fifth and sixth constant current sources I<b>5</b> and I<b>6</b>, seventh to tenth P-channel MOS transistors MP<b>7</b> to MP<b>10</b>, and seventh to tenth N-channel MOS transistors MN<b>7</b> to MN<b>10</b>. The second output drive stage circuit section <b>840</b> is provided with seventh and eighth constant current sources I<b>7</b> and I<b>8</b>, third and fourth bias voltage sources V<sub>BP2 </sub>and V<sub>BN2</sub>, eleventh and twelfth P-channel MOS transistors MP<b>11</b> and MP<b>12</b>, eleventh and twelfth N-channel MOS transistors MN<b>11</b> and MN<b>12</b>, third and fourth resistances R<b>3</b> and R<b>4</b>, and third and fourth capacitances C<b>3</b> and C<b>4</b>.
p-0104In the first input differential stage circuit section <b>810</b>, one terminal of the first constant current source I<b>1</b> is connected to the fourth power supply V<sub>SS</sub>. The other terminal of the first constant current source I<b>1</b> is connected to sources of the first and second N-channel MOS transistors MN<b>1</b> and MN<b>2</b>. A drain of the first N-channel MOS transistor MN<b>1</b> is connected to a drain and gate of the first P-channel MOS transistor MP<b>1</b> and a gate of the second P-channel MOS transistor MP<b>2</b>. A drain of the second N-channel MOS transistor MN<b>2</b> is connected to a drain of the second P-channel MOS transistor MP<b>2</b> and the common terminal of the second transfer switch circuit section SW<b>2</b>. Sources of the first and second P-channel MOS transistors MP<b>1</b> and MP<b>2</b> are connected to the common terminal of the first transfer switch circuit section SW<b>1</b>. A gate of the first N-channel MOS transistor MN<b>1</b> is connected to a gate of the third P-channel MOS transistor MP<b>3</b> and the second input node <b>812</b> of the first input differential stage circuit section <b>810</b>. A gate of the second N-channel MOS transistor MN<b>2</b> is connected to a gate of the fourth P-channel MOS transistor MP<b>4</b> and the first input node <b>811</b> of the first input differential stage circuit section <b>810</b>. One terminal of the second constant current source I<b>2</b> is connected to the first power supply voltage V<sub>DD</sub>. The other terminal of the second constant current source I<b>2</b> is connected to sources of the third and fourth P-channel MOS transistors MP<b>3</b> and MP<b>4</b>. A drain of the third P-channel MOS transistor MP<b>3</b> is connected to a drain and a gate of the third N-channel MOS transistor MN<b>3</b> and a gate of the fourth N-channel MOS transistor MN<b>4</b>. A drain of the fourth P-channel MOS transistor MP<b>4</b> is connected to a drain of the fourth N-channel MOS transistor MN<b>4</b> and the common terminal of the third transfer switch circuit section SW<b>3</b>. Sources of the third and fourth N-channel MOS transistors MN<b>3</b> and MN<b>4</b> are connected to the common terminal of the fourth transfer switch circuit section SW<b>4</b>.
p-0105Connection relation between the respective components in the second input differential stage circuit section <b>820</b> is the same as that of the above-described first input differential stage circuit section <b>810</b>, and therefore detailed description of them is omitted. However, it should be noted that the first to fourth P-channel MOS transistors MP<b>1</b> to MP<b>4</b> should be replaced by the seventh to tenth P-channel MOS transistors MP<b>7</b> to MP<b>10</b>, the first to fourth N-channel MOS transistors MN<b>1</b> to MN<b>4</b> by the seventh to tenth N-channel MOS transistors MN<b>7</b> to MN<b>10</b>, the first and second constant current sources I<b>1</b> and I<b>2</b> by the fifth and sixth constant current sources I<b>5</b> and I<b>6</b>, the first to fourth transfer switch circuit sections SW<b>1</b> to SW<b>4</b> by the fifth to eighth transfer switch circuit sections SW<b>5</b> to SW<b>8</b>, and the points <b>5</b><i>a </i>to <b>5</b><i>j </i>by the points <b>6</b><i>a </i>to <b>6</b><i>j. </i>
p-0106In the first output drive stage circuit section <b>830</b>, the first power supply voltage V<sub>DD </sub>is connected to the break terminal of the first transfer switch circuit section SW<b>1</b>, the make terminal of the fifth transfer switch circuit section SW<b>5</b>, a positive side terminal of the first constant voltage source V<sub>BP1</sub>, one terminal of the third constant current source I<b>3</b>, and a source of the sixth P-channel MOS transistor MP<b>6</b>. It should be noted that a line representing connections between the make terminal of the fifth transfer switch circuit section SW<b>5</b> and the other components passes between <figref idrefs="DRAWINGS">FIGS. 5A and 5B</figref> through the point <b>5</b><i>e</i>. The other terminal of the third constant current source I<b>3</b> is connected to the break terminal of the second transfer switch SW<b>2</b>, the make terminal of the sixth transfer switch circuit section SW<b>6</b>, a source of the fifth P-channel MOS transistor MP<b>5</b>, a drain of the fifth N-channel MOS transistor MN<b>5</b>, one terminal of the first resistance R<b>1</b>, and a gate of the sixth P-channel MOS transistor MP<b>6</b>. It should be noted that a line representing connections between the make terminal of the sixth transfer switch circuit section SW<b>6</b> and the other components passes between <figref idrefs="DRAWINGS">FIGS. 5A and 5B</figref> through the point <b>5</b><i>f</i>. A negative side terminal of the first constant voltage source V<sub>BP1 </sub>is connected to a gate of the fifth P-channel MOS transistor MP<b>5</b>. The other terminal of the first resistance R<b>1</b> is connected to one terminal of the first capacitance C<b>1</b>. The other terminal of the first capacitance C<b>1</b> is connected to one terminal of the second capacitance C<b>2</b>, the output node <b>833</b> of the first output drive stage circuit section <b>830</b>, a drain of the sixth P-channel MOS transistor MP<b>6</b>, a drain of the sixth N-channel MOS transistor MN<b>6</b>, the break terminal of the ninth transfer switch circuit section SW<b>9</b>, and the make terminal of the tenth transfer switch circuit section SW<b>10</b>. It should be noted that a line representing connections between the break terminal of the ninth transfer switch circuit section SW<b>9</b> and the other components passes between <figref idrefs="DRAWINGS">FIGS. 5A and 5B</figref> through the point <b>5</b><i>j</i>. Also, a line representing connections between the make terminal of the tenth transfer switch circuit section SW<b>10</b> and the other components passes between <figref idrefs="DRAWINGS">FIGS. 5A and 5B</figref> through the point <b>5</b><i>i</i>. The other terminal of the second capacitance C<b>2</b> is connected to one terminal of the second resistance R<b>2</b>. The other terminal of the second resistance R<b>2</b> is connected to a gate of the sixth N-channel MOS transistor MN<b>6</b>, a source of the fifth N-channel MOS transistor MN<b>5</b>, one terminal of the fourth constant current source I<b>4</b>, a drain of the fifth P-channel MOS transistor MP<b>5</b>, the break terminal of the third transfer switch circuit section SW<b>3</b>, and the make terminal of the seventh transfer switch circuit section SW<b>7</b>. It should be noted that a line representing connections between the make terminal of the seventh transfer switch circuit section SW<b>7</b> and the other components passes between <figref idrefs="DRAWINGS">FIGS. 5A and 5B</figref> through the point <b>5</b><i>a</i>. A gate of the fifth N-channel MOS transistor MN<b>5</b> is connected to a positive side terminal of the second constant voltage source V<sub>BN1</sub>. A negative side terminal of the second constant voltage source V<sub>BN1 </sub>is connected to the other terminal of the fourth constant current source I<b>4</b>, a source of the sixth N-channel MOS transistor MN<b>6</b>, the second power supply voltage V<sub>ML</sub>, the break terminal of the fourth transfer switch circuit section SW<b>4</b>, and the make terminal of the eighth transfer switch circuit section SW<b>8</b>. It should be noted that a line representing connections between the make terminal of the eighth transfer switch circuit section SW<b>8</b> and the other components passes between <figref idrefs="DRAWINGS">FIGS. 5A and 5B</figref> through the point <b>5</b><i>b. </i>
p-0107Connection relation between the components in the second output drive stage circuit section <b>840</b> is the same as that of the above-described first output drive stage circuit section <b>830</b>, and therefore detailed description of them is omitted. However, it should be noted that the fifth and sixth P-channel MOS transistors MP<b>5</b> and MP<b>6</b> should be replaced by the eleventh and twelfth P-channel MOS transistors MP<b>11</b> and MP<b>12</b>, the fifth and sixth N-channel MOS transistors MN<b>5</b> and MN<b>6</b> by the eleventh and twelfth N-channel MOS transistors MN<b>11</b> and MN<b>12</b>, the third and fourth constant current sources I<b>3</b> and I<b>4</b> by the seventh and eighth constant current sources I<b>7</b> and I<b>8</b>, the first and second constant voltage sources V<sub>BP1 </sub>and V<sub>BN1 </sub>by the third and fourth constant voltage sources V<sub>BP2 </sub>and V<sub>BN2</sub>, the first to fourth transfer switch circuit sections SW<b>1</b> to SW<b>4</b> by the fifth to eighth transfer switch circuit sections SW<b>5</b> to SW<b>8</b>, the fifth to eighth transfer switch circuit sections SW<b>5</b> to SW<b>8</b> by the first to fourth transfer switch circuit sections SW<b>1</b> to SW<b>4</b>, the ninth and tenth transfer switch circuit sections SW<b>9</b> and SW<b>10</b> by the tenth and ninth transfer switch circuit sections SW<b>10</b> and SW<b>9</b>, the first and second resistances R<b>1</b> and R<b>2</b> by the third and fourth resistances R<b>3</b> and R<b>4</b>, the first and second capacitances C<b>1</b> and C<b>2</b> by the third and fourth capacitances C<b>3</b> and C<b>4</b>, the points <b>5</b><i>e</i>, <b>5</b><i>f</i>, <b>5</b><i>j</i>, <b>5</b><i>i</i>, <b>5</b><i>a</i>, and <b>5</b><i>b </i>by the points <b>5</b><i>d</i>, <b>5</b><i>c</i>, <b>5</b><i>i</i>, <b>5</b><i>j</i>, <b>5</b><i>h</i>, and <b>5</b><i>g. </i>
p-0108Referring to <figref idrefs="DRAWINGS">FIGS. 5A and 5B</figref>, the operation of the operational amplifier according to the present embodiment will be described. First, it is assumed that the first input node <b>811</b> of the first input differential stage circuit section <b>810</b> is supplied with a positive side voltage in a voltage range of V<sub>DD</sub>/2 to V<sub>DD</sub>. In this case, states of the respective transfer switch circuit sections SW<b>1</b> to SW<b>14</b> are as illustrated in <figref idrefs="DRAWINGS">FIGS. 5A and 5B</figref>. In this case, a power supply for a differential pair including the third and fourth P-channel MOS transistors MP<b>3</b> and MP<b>4</b> in the first input differential stage circuit section <b>810</b> operates in the range of V<sub>DD</sub>/2 to V<sub>DD</sub>.
p-0109As an output stage for this case, the first output drive stage circuit section <b>830</b> is selected, which is a positive only output stage. That is, the drain of the N-channel MOS transistor MN<b>4</b>, which serves as a single end output of the above differential pair, and the gate of the N-channel MOS transistor MN<b>6</b>, which is one of inputs of the positive only output stage, are connected to each other.
p-0110In this state, a voltage between the source and drain of the above N-channel MOS transistor MN<b>4</b> corresponds to a voltage between the source and gate of the N-channel MOS transistor MN<b>6</b>, and takes a voltage value of about a threshold voltage, i.e. V<sub>T</sub>+α. This causes source-drain voltages of the N-channel MOS transistors MN<b>3</b> and MN<b>4</b> constituting an active load for the above differential pair to be matched, which is a good state in terms of offset voltage. If the negative side power supply voltage for the above differential pair is the negative power supply voltage V<sub>SS</sub>, i.e., the common terminal of the switch SW<b>4</b> is connected to the negative power supply voltage V<sub>SS</sub>, the source-drain voltage of the N-channel MOS transistor MN<b>4</b>, which is one of the components of the above active load, becomes approximately V<sub>DD</sub>/2+V<sub>T</sub>+α, so that the source-drain voltages of the N-channel MOS transistors MN<b>3</b> and MN<b>4</b> of the active load for the above differential pair are not matched, and therefore a large offset voltage is generated.
p-0111On the other hand, the drain of the second P-channel MOS transistor MP<b>2</b>, which serves as a single end output in a differential pair including the first and second N-channel MOS transistors MN<b>1</b> and MN<b>2</b>, and the gate of the sixth P-channel MOS transistor MP<b>6</b> as a first input node of the first output drive stage circuit section, which is the positive only output stage, are connected to each other. In this state, a voltage between the source and the drain of the P-channel MOS transistor MP<b>2</b> corresponds to a voltage between the source and the gate of the above sixth P-channel MOS transistor MP<b>6</b>, and also takes a voltage value of approximately a threshold V<sub>T</sub>+α.
p-0112As a result, source-drain voltages of the first and second P-channel MOS transistors MP<b>1</b> and MP<b>2</b> of an active load for the above differential pair are matched, which is a good state in terms of offset voltage. If a positive side power supply voltage for the above differential pair is connected through the first transfer switch circuit section SW<b>1</b> with the power supply voltage V<sub>MH </sub>corresponding to approximately a half of the power supply voltage V<sub>DD</sub>, the P-channel MOS transistors MP<b>1</b> and MP<b>2</b> of the above active load do not operate. This is because a voltage at the drain of the second P-channel MOS transistor MP<b>2</b> becomes higher than a voltage at the source.
p-0113In this way, the respective transfer switch circuit sections SW<b>1</b> to SW<b>14</b> according to the present invention are switched such that all bias states become best.
p-0114Here, an operation of the output stage, i.e., the output drive stage circuit sections <b>830</b> and <b>840</b> will be described.
p-0115First, the third and fourth constant current sources I<b>3</b> and I<b>4</b> are configured to have a same current value. This is because the current flowing through the third constant current source I<b>3</b> is divided into two by the fifth P-channel MOS transistor MP<b>5</b> and fifth N-channel MOS transistor MN<b>5</b> constituting a floating current source, and a total of the two flows through the fourth current source I<b>4</b> to prevent excess current from flowing through the differential stages <b>810</b> and <b>820</b>.
p-0116An operation in floating current sources in <figref idrefs="DRAWINGS">FIGS. 5A and 5B</figref> will be described. A combination of the fifth N-channel MOS transistor MN<b>5</b> and the fifth P-channel MOS transistor MP<b>5</b> operates as the so-called “floating current source”. In a typical current source including transistors, one terminal is connected to a power supply terminal or a GND terminal. However, in the “floating current source”, both terminals of the current source are in a floating state, and therefore can be connected to any nodes. The connections of the fifth N-channel MOS transistor MN<b>5</b> and the fifth P-channel MOS transistor MP<b>5</b> are locally applied with a current feedback of “1”. For this reason, a common connecting point between the source of the transistor MN<b>5</b> and the drain of the transistor MP<b>5</b> and a common connecting point between the drain of the transistor MN<b>5</b> and the source of the transistor MP<b>5</b> respectively have high impedances because of the effect of the feedback. It can be seen also from this that the floating current source is configured.
p-0117Here, bias design of the floating current source will be described. First, a voltage V<sub>BN1 </sub>between the power supply voltage V<sub>ML </sub>and a bias voltage terminal BN<b>1</b> is equal to the sum of the gate-source voltage of the sixth N-channel MOS transistors MN<b>6</b>, which is an output transistor, and a gate-source voltage of the fifth N-channel MOS transistor MN<b>5</b>. From this, the following equation is met: <br /><i>V</i><sub>BN1</sub><i>=V</i><sub>GS(MN5)</sub><i>+V</i><sub>GS(MN6)</sub> (1)<br /> where V<sub>GS(MN5) </sub>is the gate-source voltage of MN<b>5</b>, and V<sub>GS(MN6) </sub>is the gate-source voltage of MN<b>6</b>.
p-0118In general, a gate-source voltage of an MOS transistor is expressed by the following equation: <br /><i>V</i><sub>GS</sub>=(2<i>I</i><sub>D</sub>/β)<sup>1/2</sup><i>+V</i><sub>TO</sub><i>+γV</i><sub>B</sub><sup>1/2</sup> (2)<br /> where <br />β=(<i>W/L</i>)μ<i>C</i><sub>O</sub> (2a)<br />γ=((2ε<sub>O</sub>ε<sub>S</sub><i>qN</i><sub>A</sub>)<sup>1/2</sup>)/<i>C</i><sub>O</sub> (2b)<br /><i>C</i><sub>O</sub>=ε<sub>O</sub>ε<sub>S</sub><i>/t</i><sub>O</sub> (2c)<br /> Here, W is a gate width, L is a gate length, μ is a mobility, C<sub>O </sub>is a capacitance per unit area in a gate oxide film, V<sub>γO </sub>is a threshold at V<sub>B</sub>=0, V<sub>B </sub>is a back gate voltage, ε<sub>O </sub>is a free space permittivity (8.86×10<sup>−14 </sup>F/cm), ε<sub>S </sub>is a relative permittivity of semiconductor (e.g. 3.9), q is an electric charge of an electron (1.6×10<sup>−12 </sup>coulombs), t<sub>O </sub>is a gate oxide film thickness, N<sub>A </sub>is an acceptor density, and γ is a value depending on a process, of which an average value is approximately 0.5.
p-0119The bias voltage V<sub>BN1 </sub>is determined on the basis of the above equations (1) and (2) such that a drain current (I<sub>D</sub>) has a desired value. In this case, a circuit for generating the bias voltage V<sub>BN1 </sub>typically includes an N-channel MOS transistor to suppress a variation in bias current due to a variation in threshold V<sub>T </sub>of a transistor. It should be noted that in <figref idrefs="DRAWINGS">FIGS. 5A and 5B</figref>, the transistor for preventing the variation is not illustrated.
p-0120Regarding the fifth and sixth P-channel MOS transistors MP<b>5</b> and MP<b>6</b>, the same bias design can also be applied. Therefore, description thereof is omitted.
p-0121Next, a phase compensation will be described. The first and second capacitances C<b>1</b> and C<b>2</b> and the first and second resistances R<b>1</b> and R<b>2</b> operate as a phase compensation circuit. Such a phase compensation circuit is obvious to a person skilled in the art, and not directly related to the present invention, and therefore the description is omitted.
p-0122Also, regarding a differential stage B that is the second input differential stage circuit section <b>820</b>, and a negative only output stage that is the second output drive stage circuit section <b>840</b>, as described above, switching is made by use of the switches such that a relation between a single end output of each differential stage and an input of each output stage entirely operate well. Regarding this, the same description as in the differential stage A and the positive only output stage can be applied. Therefore, the description thereof is omitted.
p-0123The operational amplifier circuit section <b>80</b> according to the present embodiment is further provided with ninth and tenth transfer switch circuit sections SW<b>9</b> and SW<b>10</b> for voltage follower connections. In the switch states as shown in <figref idrefs="DRAWINGS">FIGS. 5A and 5B</figref>, the differential stage A and the positive only output stage form a voltage follower connection, to output a voltage supplied to the differential stage A from an output terminal Vout of the positive only output stage. Further, the differential stage B and the negative only output stage also form a voltage follower connection, to output a voltage supplied to the differential stage B from an output terminal Vout of the negative only output stage.
p-0124On the other hand, if the states of the ninth and tenth transfer switch circuit sections SW<b>9</b> and SW<b>10</b> are switched to be brought to states opposite to the states shown in <figref idrefs="DRAWINGS">FIGS. 5A and 5B</figref>, the differential stage A and the negative only output stage form a voltage follower connection, to a voltage supplied to the differential stage A from the output terminal Vout of the negative only output stage. Further, the differential stage B and the positive only output stage also form a voltage follower connection, to output a voltage supplied to the differential stage B from the output terminal Vout of the positive only output stage.
p-0125It should be noted that the first, fourth, fifth, and eighth transfer switch circuit sections SW<b>1</b>, SW<b>4</b>, SW<b>5</b>, and SW<b>8</b> operate as switches for power supply switching, and currents flow through these transfer switch circuit sections. However, it is in the differential stage that the currents flow through the switches. A current in a differential stage of the operational amplifier used for a typical LCD driving circuit is approximately 1 μA, and therefore voltage drops generated due to the switches are almost negligible. If such switches are inserted for the power supply voltages in the output stage, a current flowing through the output stage is larger by two orders than the current flowing through the differential stage, and therefore voltage drops due to the switches are not negligible. One feature of the operational amplifier circuit section <b>80</b> according to the present invention is in that the voltage drops due to the currents flowing through the switches are almost negligible.
p-0126<figref idrefs="DRAWINGS">FIGS. 7A-1</figref> to <b>7</b>A-<b>4</b>, and <b>7</b>B-<b>1</b> to <b>7</b>B-<b>4</b> are circuit diagrams showing configuration examples of the transfer switch circuit section used in the operational amplifier according to the present invention. <figref idrefs="DRAWINGS">FIG. 7A-1</figref> is a circuit diagram schematically showing a make type switch circuit section, and <figref idrefs="DRAWINGS">FIG. 7A-2</figref> is a circuit diagram showing the make type switch circuit section with use of an N-channel MOS transistor. <figref idrefs="DRAWINGS">FIG. 7A-3</figref> is a circuit diagram showing the make type switch circuit section with use of a P-channel MOS transistor, and <figref idrefs="DRAWINGS">FIG. 7A-4</figref> is a circuit diagram showing the make type switch circuit section with use of two types of MOS transistors. <figref idrefs="DRAWINGS">FIG. 7B-1</figref> is a circuit diagram schematically showing a transfer switch circuit section, and <figref idrefs="DRAWINGS">FIG. 7B-2</figref> is a circuit diagram showing the transfer switch circuit section with use of N-channel MOS transistors. <figref idrefs="DRAWINGS">FIG. 7B-3</figref> is a circuit diagram showing the transfer switch circuit section with use of N-channel MOS transistors, and <figref idrefs="DRAWINGS">FIG. 7B-4</figref> is a circuit diagram showing the transfer switch circuit section with use of two types of MOS transistors.
p-0127<figref idrefs="DRAWINGS">FIGS. 7A-2</figref> and <b>7</b>A-<b>3</b> will be described. Both terminals of the make type switch respectively correspond to a drain and a source of an N-channel or P-channel MOS transistor. Also, it is assumed that ON/OFF control of the switch is performed through a gate. In the case of the N-channel MOS transistor, when the gate is in a high level, the switch is closed, whereas when the gate is in a low level, the switch is turned OFF. In the case of the P-channel MOS transistor, the operation is opposite to the above, in which when the gate is in the low level, the switch is closed, whereas when the gate is in the high level, the switch is turned OFF.
p-0128<figref idrefs="DRAWINGS">FIG. 7A-4</figref> will be described. This switch circuit is provided with an N-channel MOS transistor, a P-channel MOS transistor, and an inverter circuit. The N-channel and P-channel MOS transistors form a combined circuit. That is, a drain of the N-channel MOS transistor and a drain of the P-channel MOS transistor are connected to each other, and further connected to one terminal of the make type switch. Similarly, a source of the N-channel MOS transistor and a source of the P-channel MOS transistor are connected to each other, and further connected to the other terminal of the make type switch. A control terminal of the switch circuit is connected to an input section of the inverter circuit section and a gate of the N-channel MOS transistor. An output section of the inverter circuit section is connected to a gate of the P-channel MOS transistor.
p-0129In other words, the switch circuit in FIG. <b>7</b>A-<b>4</b> is configured such that, in the N-channel and P-channel MOS transistors combined circuit, the respective drains of the N-channel MOS transistor and the P-channel MOS transistor are connected in common, and the respective sources of the N-channel and the P-channel are connected in common, and the respective gates are driven by signals having opposite phases with use of the inverter. In this case, when the gate of the N-channel MOS transistor is in the high level, the gate of the P-channel MOS transistor is in the low level because of the inverter, and both of them are turned ON. That is, the switch is turned ON. On the other hand, when the gate of the N-channel MOS transistor is in the low level, the gate of the P-channel is in the high level because of the inverter, and both of them are turned OFF. That is, the switch is turned OFF.
p-0130A break type switch can be realized by inversion of control logic of the above-described make type switch. The same matter as in the make type can be applied, and therefore description thereof is omitted.
p-0131<figref idrefs="DRAWINGS">FIG. 7B-2</figref> will be described. This transfer switch circuit section is configured such that respective sources of two N-channel MOS transistors are connected to each other, and the connecting point is used as a common point. Also, drains of the two N-channel MOS transistors are respectively used as first and second terminals, i.e., break and make terminals. Gates of the two N-channel MOS transistors are respectively connected to input and output sections of an inverter circuit section. By connecting a control terminal of the transfer switch circuit section to the input section of the inverter circuit section, the two N-channel MOS transistors are supplied with control signals having opposite phases. More detailed operation in each of the two N-channel MOS transistors is the same as that for the case of <figref idrefs="DRAWINGS">FIG. 7A-2</figref>, and therefore description thereof is omitted.
p-0132<figref idrefs="DRAWINGS">FIG. 7B-3</figref> will be described. This transfer switch circuit section is the same as that for the case of <figref idrefs="DRAWINGS">FIG. 7B-2</figref> except for using two P-channel MOS transistors, and therefore detailed description is omitted. Also, detailed operation in each of the two P-channel MOS transistors is the same as that for the case of <figref idrefs="DRAWINGS">FIG. 7A-3</figref>, and therefore description thereof is omitted.
p-0133<figref idrefs="DRAWINGS">FIG. 7B-4</figref> will be described. This transfer switch circuit section is the same as that for the case of <figref idrefs="DRAWINGS">FIG. 7B-2</figref> or <b>7</b>B-<b>3</b>, excluding use of two combined structures each including an N-channel MOS transistor and a P-channel MOS transistor, and therefore detailed description is omitted.
p-0134Whether an N-channel MOS transistor, a P-channel MOS transistor, or a combined circuit including an N-channel MOS transistor and a P-channel MOS transistor should be used as the transfer switch circuit section used in the operational amplifier according to the present invention, depends on a voltage in each of the transfer switch circuit sections. For example, supposing that a power supply voltage is V<sub>DD</sub>, it is preferable that, if a voltage applied to a switch is higher than approximately V<sub>DD</sub>/2, the P-channel MOS transistor is used, whereas if the voltage applied to the switch is lower than approximately V<sub>DD</sub>/2, the N-channel MOS transistor is used, and further if it is necessary to perform operation in the entire input voltage range of V<sub>SS </sub>(GND) to V<sub>DD</sub>, the combined circuit including an N-channel MOS transistor and a P-channel MOS transistor is used.
p-0135It should be noted that the switch circuits described in <figref idrefs="DRAWINGS">FIGS. 7A-1</figref> to <b>7</b>B-<b>4</b> are only examples, and a configuration of the present invention is not limited to any of them.
p-0136The differential stage in the conventional example shown in <figref idrefs="DRAWINGS">FIG. 2</figref> is provided with a combination of MN<b>101</b> and MN<b>102</b>, a combination of MP<b>101</b> and MP<b>102</b>, a combination of MN<b>103</b> and MN<b>104</b>, a combination of MP<b>103</b> and MP<b>104</b>, and a combination of MP<b>105</b> and MP<b>106</b>. In the five combinations of transistors, a variation in threshold of a transistor affects an offset voltage of an amplifier. In the conventional example, as compared with a configuration of a typical P/N combined differential stage, the number of transistors is larger, and consequently the offset voltage is large. Accordingly, if the circuit according to the conventional example is used as the LCD driver, a deviation characteristic may be degraded.
p-0137Further, in the conventional example, as can be seen from the configuration in <figref idrefs="DRAWINGS">FIG. 3</figref>, the number of paths that determine a static current consumption amount is as many as three, even excluding the output stage. That is, the three paths are a path through MP<b>107</b>, a path through MP<b>108</b>, and a path through MP<b>109</b>. As a result, the conventional example has a problem of a large power consumption amount.
p-0138Further, referring to <figref idrefs="DRAWINGS">FIG. 3</figref>, between a drain-source voltage of the PMOS transistor MP<b>109</b> in the drive stage circuit <b>130</b> and a drain-source voltage of a PMOS transistor MP<b>209</b> in the drive stage circuit <b>230</b>, there is a voltage difference of approximately V<sub>DD</sub>/2. Drain currents of the two P-channel MOS transistors MP<b>109</b> and MP<b>209</b> represent different values due to the voltage difference and output resistances in pentode regions of the transistors. That is, the drive stage circuits <b>130</b> and <b>230</b> represent different output characteristics.
p-0139Further, an application range of the configuration in the conventional example is limited to the circuit illustrated in the conventional example, and the configuration cannot be applied to the other typical operational amplifier circuit.
p-0140According to the operational amplifier and the LCD driving circuit for driving a liquid crystal display apparatus by use of the operational amplifier, and the liquid crystal display apparatus according to the present embodiment, the problems of the conventional example are all solved. That is, the number of combinations of transistors having a variation in threshold, which affects an offset voltage of an amplifier, is only four. That is, the four combinations are a combination of MN<b>1</b> and MN<b>2</b>, a combination of MP<b>1</b> and MP<b>2</b>, a combination of MP<b>3</b> and MP<b>4</b>, and a combination of MN<b>3</b> and MN<b>4</b>, which achieve the reduction of one combination from the five combinations in the conventional example. Thus, the offset voltage can be more improved than that in the conventional example.
p-0141Also, in the operational amplifier circuit section <b>80</b> according to the present embodiment, the number of current paths in the first stage is only two, i.e., I<b>1</b> and I<b>2</b>. Further, even in the output stage, the number of current paths is only two. As described, according to the present embodiment, a current consumption amount can be made lower than that in the conventional example.
p-0142Also, in the operational amplifier circuit section <b>80</b> according to the present embodiment, there is no case where a high voltage is applied to a specific transistor to make a circuit asymmetric as in the conventional example.
p-0143Further, the present embodiment can be applied to the other circuits, and has advantages that the circuit limitation as in the conventional example is absent, and so on.
Second Embodiment
p-0144<figref idrefs="DRAWINGS">FIGS. 6A and 6B</figref> are circuit diagrams showing a configuration of the operational amplifier circuit section <b>80</b> according to a second embodiment of the present invention. It should be noted that <figref idrefs="DRAWINGS">FIGS. 6A and 6B</figref> illustrate one circuit diagram separated into two diagrams. Reference numerals <b>6</b><i>a </i>to <b>6</b><i>j </i>are notations for specifying ten lines divided between the both diagrams. In addition, an entire configuration of the operational amplifier according to the present embodiment is the same as that in the first embodiment of the present invention, which is as described with use of the above-described <figref idrefs="DRAWINGS">FIG. 4</figref>, and therefore further description is omitted.
p-0145The configuration of the operational amplifier circuit section <b>80</b> according to the present embodiment is almost the same as that of the operational amplifier circuit section <b>80</b> according to the first embodiment of the present invention. However, the present embodiment is different from the first embodiment in the following four points. That is, in a first input differential stage circuit section <b>810</b>, one terminal of the first constant current source I<b>1</b> is connected to sources of third and fourth N-channel MOS transistors MN<b>3</b> and MN<b>4</b> and the common terminal of the fourth transfer switch circuit section SW<b>4</b>, instead of being connected to the fourth power supply voltage V<sub>SS</sub>. Similarly, one terminal of the second constant current source I<b>2</b> is connected to sources of first and second P-channel MOS transistors MP<b>1</b> and MP<b>2</b> and the common terminal of the first transfer switch circuit section SW<b>1</b>, instead of being connected to the first power supply voltage V<sub>DD</sub>. Also, in a second input differential stage circuit section <b>820</b>, one terminal of the fifth constant current source I<b>5</b> is connected to sources of ninth and tenth N-channel MOS transistors MN<b>9</b> and MN<b>10</b> and the common terminal of the eighth transfer switch circuit section SW<b>8</b>, instead of being connected to the fourth power supply voltage V<sub>SS</sub>. Similarly, one terminal of the sixth constant current source I<b>6</b> is connected to respective sources of seventh and eighth P-channel MOS transistors MP<b>7</b> and MP<b>8</b> and the common terminal of the fifth transfer switch circuit section SW<b>5</b>, instead of being connected to the first power supply voltage V<sub>DD</sub>.
p-0146The configuration of the operational amplifier circuit section <b>80</b> according to the present embodiment is the same as that in the first embodiment, except for the above four points, and therefore further description is omitted.
p-0147Referring to <figref idrefs="DRAWINGS">FIGS. 6A and 6B</figref>, the operation of the operational amplifier according to the present embodiment will be described.
p-0148A difference between the present embodiment illustrated in <figref idrefs="DRAWINGS">FIGS. 6A and 6B</figref> and the first embodiment illustrates in <figref idrefs="DRAWINGS">FIGS. 5A and 5B</figref> is in the power supply voltages applied to a differential pair circuit. That is, in the first embodiment, the voltage applied to the differential pair circuit which includes the first current source I<b>1</b>, the differential pair transistors MN<b>1</b>/MN<b>2</b>, and the transistors MP<b>1</b>/MP<b>2</b> serving as the active load for the differential pair is V<sub>DD </sub>when the transfer switch circuit sections are in the first state, or approximately V<sub>DD</sub>/2 when they are in the second state. On the other hand, in the second embodiment, a voltage applied to a corresponding differential pair circuit is constantly approximately V<sub>DD</sub>/2.
p-0149This leads to a possibility that source-drain voltages of all transistors to operate are approximately V<sub>DD</sub>/2 or less. That is, there is an advantage that a required transistor breakdown voltage is only a half, which then leads to a reduction in cost.
p-0150In the above, one of two differential pairs present in the first input differential stage circuit section <b>810</b> has been described. However, the same holds true for the other differential pair (which includes the second current source I<b>2</b>, differential pair transistors MP<b>3</b>/MP<b>4</b>, and transistors MN<b>3</b>/MN<b>4</b> serving as an active load for the differential pair). Similarly, the same holds true for two differential pairs present in the second input differential stage circuit section <b>820</b>. Detailed description of each of them is omitted.
p-0151The operation of the operational amplifier in the present embodiment other than the above-mentioned operation is also the same as that in the above-described first embodiment, and therefore detailed description thereof is omitted.
p-0152As has been described above, the operational amplifier of the present invention has an advantage of being easily achieved in any type of operational amplifier by switching the power supply voltage applied to the differential stage to match the differential stage to an input level of the output stage. The conventional example can be realized only with the specific circuit configuration shown in the conventional example, but cannot be applied in any other circuit (e.g., the operational amplifier circuit illustrated in the first embodiment).
p-0153Since a current flowing through a switch inserted in series in the power supply for the differential stage is small, and therefore a voltage drop by the switch is small, resulting in small influence on the circuit.
p-0154Further, by employing the circuit configuration according to the second embodiment, a voltage applied to a transistor can be reduced to approximately a half of the power supply voltage. This results in a reduction in breakdown voltage of the transistor, so that a chip size can be reduced if the configuration is realized as an LSI. That is, cost can be reduced.
p-0155Still further, there is also an advantage that the circuit configuration of the differential stage is a P/N symmetrical configuration, and therefore an output transient characteristic waveform is also symmetrized, so as to meet characteristics required for an LCD source driver.
p-0156Yet further, there is an advantage also from the view of a current consumption amount that the configuration of the first or second embodiment has a small number of current paths as compared with the conventional example, and therefore an operational amplifier circuit having a low current consumption amount can be configured.
p-0157The operational amplifier of the present invention is suitable to an output amplifier of the LCD driving circuit. In the current situation that an LCD driving circuit having the outputs exceeding 1000 (channels) is recently developed, a voltage follower connected operational amplifier is required for the number of channels in the conventional example. Accordingly, 1000 times as much as a power consumption amount by one operational amplifier is equivalent to a power consumption amount of one chip. When the number of outputs is large as described, the power consumption amount of the chip is increased, and a chip temperature may be elevated close to 150° C. that is equivalent to a limitation of silicon. Even in such a sense, by using the operational amplifier of the present invention, the power consumption amount can be reduced.
p-0158Although the present invention has been described above in connection with several embodiments thereof, it would be apparent to those skilled in the art that those embodiments are provided solely for illustrating the present invention, and should not be relied upon to construe the appended claims in a limiting sense.
Contents7
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| CN101996596A | China | A | |
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| US2013002636A1 | United States of America | A1 | |
| JP5208882B2 | Japan | B2 | |
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| CN101996596B | China | B |
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Numbers
- Publication
- 08289079
- Application
- 83614810
Titles
- English
- LCD driving circuit using operational amplifier and LCD display apparatus using the same
Patent term adjustment
- A delay
- +237 daysthe office missed an examination deadline
- Net adjustment
- 237 days
Classification
- CPC, 16
- H03F3/45475
- G09G3/3614
- G09G3/3688
- H03F3/3022
- H03F3/45183
- H03F3/4521
- H03F2200/411
- H03F2203/45562
- H03F2203/45614
- H03F2203/45616
- H03F2203/45644
- H03F2203/45646
- H03F2203/45648
- H03F2203/45651
- H03F2203/45724
- H03F2203/45726
- IPC, 1
- H03F3 45